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N3 染料诱导介孔 TiO2 薄膜中可见激光锐钛矿向金红石的相转变。

N3-dye-induced visible laser anatase-to-rutile phase transition on mesoporous TiO2 films.

机构信息

Instituto de Química, Universidade de São Paulo, Av. Prof. Lineu Prestes 748, Butanta, CEP 05508-000, São Paulo, SP, Brazil.

出版信息

Langmuir. 2011 Aug 2;27(15):9094-9. doi: 10.1021/la201838z. Epub 2011 Jun 30.

Abstract

Titanium dioxide has been extensively used in photocatalysis and dye-sensitized solar cells, where control of the anatase-to-rutile phase transformation may allow the realization of more efficient devices exploiting the synergic effects at anatase/rutile interfaces. Thus, a systematic study showing the proof of concept of a dye-induced morphological transition and an anatase-to-rutile transition based on visible laser (532 nm) and nano/micro patterning of mesoporous anatase (Degussa P25 TiO(2)) films is described for the first time using a confocal Raman microscope. At low laser intensities, only the bleaching of the adsorbed N3 dye was observed. However, high enough temperatures to promote melting/densification processes and create a deep hole at the focus and an extensive phase transformation in the surrounding material were achieved using 1s laser pulses of 25-41 mW/cm(2), in resonance with the MLCT band. The dye was shown to play a key role, being responsible for the absorption and efficient conversion of the laser light into heat. As a matter of fact, the dye is photothermally decomposed to amorphous carbon or to gaseous species (CO(x), NO(x), and H(2)O) under a N(2) or O(2) atmosphere, respectively.

摘要

二氧化钛已广泛应用于光催化和染料敏化太阳能电池,控制锐钛矿相向金红石相的转变可能使利用锐钛矿/金红石界面协同效应的更高效器件得以实现。因此,首次使用共聚焦拉曼显微镜系统地研究了可见光激光(532nm)和介孔锐钛矿(Degussa P25 TiO(2))薄膜的纳米/微图案化诱导染料形貌转变和锐钛矿向金红石转变的概念验证。在低激光强度下,仅观察到吸附 N3 染料的漂白。然而,通过使用 25-41mW/cm(2)、与 MLCT 带共振的 1s 激光脉冲,实现了足以促进熔融/致密化过程并在焦点处形成深孔以及周围材料广泛相转变的足够高的温度。染料起着关键作用,负责吸收和有效地将激光光转化为热。事实上,在氮气或氧气气氛下,染料分别光热分解为无定形碳或气态物质(CO(x)、NO(x)和 H(2)O)。

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